[Technical Field]
[0001] The present disclosure relates to a surface-treatment solution composition containing
trivalent chromium and an inorganic compound, a zinc-based plated steel sheet surface-treated
using the same, and a method for producing the same.
[Background Art]
[0002] A molten galvanizing material, comprising a zinc (Zn) plated layer, is widely used
as a material for building materials due to having excellent corrosion resistance
due to the protective effect of the ferrous iron by the sacrificial method. However,
the molten galvanizing material may mainly be made of Zn on a surface to be exposed.
Therefore, when exposed to a normal environment, especially a wet atmosphere, white
rust may occur on the surface to easily deteriorate an appearance of the surface.
In addition, when the molten galvanizing material is exposed to a high-temperature
and high-humidity environment, there is a problem in which a surface color thereof
may be changed to black, i.e., a blackening phenomenon may easily occur.
[0003] To solve such problems, conventionally, corrosion resistance and blackening resistance
have been secured by applying hexavalent chromium or a chromate treatment to a plated
steel sheet. However, since hexavalent chromium has been designated as an environmentally
hazardous substance, regulations for the use of hexavalent chromium are now being
strengthened. Furthermore, when using hexavalent chromium as a surface treating agent
for a plated steel sheet, there may be a problem in which a surface of the steel sheet
is blackened, or black spots may be generated thereon.
[0004] Therefore, at present, a method of coating a surface-treatment solution composition
containing trivalent chromium on a steel sheet, to secure corrosion resistance and
blackening resistance of a plated steel sheet, has been applied. For example, in patent
publications
Korean Patent Publication Nos. 10-2006-0123628,
10-2005-0052215, and
10-2009-0024450, corrosion resistance and blackening resistance properties are secured by a method
in which a steel sheet may be immersed in a composition containing trivalent chromium
to perform a chemical conversion treatment. However, there may be a problem in which
it takes a relatively long time to immerse the steel in the continuous process of
the steelmaker, and the chemical conversion treatment may have deteriorated fingerprint
resistance, or the like.
[0005] In
Korean Patent Publication No. 10-2004-0046347 and
Japanese Patent Publication No. 2002-069660, a composition containing trivalent chromium may be coated on a steel sheet by a
spray or roll coating method. Therefore, such methods may be applied in the continuous
process of the steelmaker, and may have fingerprint resistance. However, since the
composition contains a porous silica component, it may be not suitable for Mg and
Al alloys, which may be highly discolored in a relatively wet atmosphere. Further,
since the porous silica has high hygroscopic properties, a problem in which discoloration
may rapidly occur in Mg, Al, and Zn alloy steel sheets, may occur.
US 2013/177768 A1 relates to a method for coating metallic surfaces with an aqueous composition as
a solution or as a dispersion, wherein the composition contains a) at least one phosphate,
b) at least 0.1 g/L of at least one titanium and/or zirconium compound, c) at least
one complexing agent, d) cations of aluminum, chromium(III), and/or zinc and/or at
least one compound containing aluminum, chromium(III), and/or zinc, and e) 1 to 500
g/L of at least one acid-tolerant cationic or nonionic organic polymer/copolymer,
relative to the content of the solids and active substances in these additives.
[Disclosure]
[Technical Problem]
[0006] An aspect of the present disclosure may provide a surface-treatment solution composition,
which may not contain hexavalent chromium, an environmentally hazardous substance,
and which may contain trivalent chromium and an inorganic compound as main components,
harmless to the human body, and may provide a surface-treated zinc-based plated steel
sheet, having an excellent effect on corrosion resistance, blackening resistance,
fingerprint resistance, piping oil infiltration, and alkali resistance, by applying
the solution composition to a surface of a zinc-based plated steel sheet.
[Technical Solution]
[0007] The invention is defined in the appended claims.
[0008] According to an aspect of the present disclosure, a surface-treatment solution composition
for a zinc-based plated steel sheet, includes: 10wt% to 20wt% of a trivalent chromium
compound containing chromium phosphate (A) and chromium nitrate (B); 20wt% to 40wt%
of a silane-based sol-gel resin in which three types of silane compounds are crosslinked;
0.2wt% to 0.4wt% of a rust-inhibiting and corrosion-resistant agent; 0.1wt% to 0.3wt%
of a molybdenum-based compound; 5wt% to 10wt% of a water-soluble cationic urethane
resin; 0.5wt% to 2.0wt% of a silane coupling agent; 0.5wt% to 2.0wt% of an Al compound;
and 25.3wt% to 63.7wt% of water.
[0009] In the surface-treating solution composition, the chromium phosphate (A) and the
chromium nitrate (B) may satisfy a content ratio A/(A+B) of 0.3 to 0.6.
[0010] In the surface-treating solution composition, the rust-inhibiting and corrosion-resistant
agent is one or more selected from the group consisting of a fluorine-based rust inhibitor,
a vanadium-based rust inhibitor, a cerium salt-based rust inhibitor, and a cobalt-based
rust inhibitor.
[0011] In the surface-treating solution composition, the molybdenum-based compound is one
or more selected from the group consisting of molybdenum oxide, molybdenum sulfide,
molybdenum acetate, molybdenum phosphate, molybdenum carbide, molybdenum chloride,
molybdenum fluoride, and molybdenum nitride.
[0012] In the surface-treating solution composition, the silane coupling agent may be one
or more selected from the group consisting of 2-(3,4-epoxycyclohexyl)-ethyl trimethoxysilane,
3-glycidoxypropyl trimethoxysilane, 3-glycidoxypropyl methyldiethoxysilane, 3-glycidoxypropyl
triethoxysilane, N-2-(aminoethyl)-3-aminopropyl methyldimethoxysilane, N-2-(aminoethyl)-3-aminopropyl
trimethoxysilane, N-2-(aminoethyl)-3-aminopropyl triethoxysilane, 3-aminopropyl trimethoxysilane,
3-aminopropyl triethoxysilane, 3-ureidopropyl trimethoxysilane, and 3-ureidopropyl
trialkoxysilane.
[0013] In the surface-treating solution composition, the Al compound is one or more selected
from the group consisting of aluminum hydroxide, aluminum chloride, aluminum nitride,
aluminum sulfate, aluminum isopropoxide, and aluminum phosphate.
[0014] In the surface-treating solution composition, the three types of silane compounds
is one type of first silane selected from the group consisting of tetraethylorthosilicate,
tetramethoxysilane, methyltrimethoxysilane, methyltriethoxysilane, dimethyldimethoxysilane,
and dimethyldiethoxysilane; one type of second silane selected from the group consisting
of 3-glycidoxypropyl trimethoxysilane, 2-(3,4-epoxycyclohexyl)-ethyl trimethoxysilane,
3-glycidoxypropyl trimethoxysilane, and 3-glycidoxypropyl methyldiethoxysilane; and
one type of third silane selected from the group consisting of 3-aminopropyl triethoxysilane,
N-2-(aminoethyl)-3-aminopropyl methyldimethoxysilane, N-2-(aminoethyl)-3-aminopropyl
trimethoxysilane, and N-2-(aminoethyl)-3-aminopropyl triethoxysilane.
[0015] According to an aspect of the present disclosure, a surface-treated zinc-based plated
steel sheet includes: a steel sheet; a zinc-based plated layer formed on at least
one surface of the steel sheet; and a trivalent chromate film layer having a thickness
of 0.1µm or more formed on the zinc-based plated layer, wherein the trivalent chromate
film layer includes: 31.47wt% to 35.23wt% of a trivalent chromium compound containing
chromium phosphate (A) and chromium nitrate (B) ; 32.49wt% to 36.36wt% of a silane-based
sol-gel resin in which three types of silane compounds are crosslinked; 2.03wt% to
2.27wt% of a rust-inhibiting and corrosion-resistant agent; 1.14wt% to 1.52wt% of
a molybdenum-based compound; 12.18wt% to 13.64wt% of a urethane resin; 5.68wt% to
10.15wt% of a silane coupling agent; and 5.68wt% to 10.15wt% of an Al compound.
[0016] In the surface-treated zinc-based plated steel sheet, the chromium phosphate (A)
and chromium nitrate (B) may satisfy a content ratio A/(A+B) of 0.89 to 0.95.
[0017] In the surface-treated zinc-based plated steel sheet, the rust-inhibiting and corrosion-resistant
agent is one or more selected from the group consisting of a fluorine-based rust inhibitor,
a vanadium-based rust inhibitor, a cerium salt-based rust inhibitor, and a cobalt-based
rust inhibitor.
[0018] In the surface-treated zinc-based plated steel sheet, the molybdenum-based compound
is one or more selected from the group consisting of molybdenum oxide, molybdenum
sulfide, molybdenum acetate, molybdenum phosphate, molybdenum carbide, molybdenum
chloride, molybdenum fluoride, and molybdenum nitride.
[0019] In the surface-treated zinc-based plated steel sheet, the silane coupling agent may
be one or more selected from the group consisting of 2-(3,4-epoxycyclohexyl)-ethyl
trimethoxysilane, 3-glycidoxypropyl trimethoxysilane, 3-glycidoxypropyl methyldiethoxysilane,
3-glycidoxypropyl triethoxysilane, N-2-(aminoethyl)-3-aminopropyl methyldimethoxysilane,
N-2-(aminoethyl)-3-aminopropyl trimethoxysilane, N-2-(aminoethyl)-3-aminopropyl triethoxysilane,
3-aminopropyl trimethoxysilane, 3-aminopropyl triethoxysilane, 3-ureidopropyl trimethoxysilane,
and 3-ureidopropyl trialkoxysilane.
[0020] In the surface-treated zinc-based plated steel sheet, the Al compound is one or more
selected from the group consisting of aluminum hydroxide, aluminum chloride, aluminum
nitride, aluminum sulfate, aluminum isopropoxide, and aluminum phosphate.
[0021] In the surface-treated zinc-based plated steel sheet, the three types of silane compounds
is one type of first silane selected from the group consisting of tetraethylorthosilicate,
tetramethoxysilane, methyltrimethoxysilane, methyltriethoxysilane, dimethyldimethoxysilane,
and dimethyldiethoxysilane; one type of second silane selected from the group consisting
of 3-glycidoxypropyl trimethoxysilane, 2-(3,4-epoxycyclohexyl)-ethyl trimethoxysilane,
3-glycidoxypropyl trimethoxysilane, and 3-glycidoxypropyl methyldiethoxysilane; and
one type of third silane selected from the group consisting of 3-aminopropyl triethoxysilane,
N-2-(aminoethyl)-3-aminopropyl methyldimethoxysilane, N-2-(aminoethyl)-3-aminopropyl
trimethoxysilane, and N-2-(aminoethyl)-3-aminopropyl triethoxysilane.
[0022] In the surface-treated zinc-based plated steel sheet, the trivalent chromate film
layer may have a thickness of 0.3µm to 0.5µm.
[0023] According to an aspect of the present disclosure, a method for producing a surface-treated
zinc-based plated steel sheet, includes: coating a surface-treatment solution composition
on a zinc-based plated steel sheet on which a zinc-based plated layer is formed; and
drying the coated surface-treatment solution composition to form a trivalent chromate
film layer, wherein the surface-treatment solution composition may include: 10wt%
to 20wt% of a trivalent chromium compound containing chromium phosphate (A) and chromium
nitrate (B); 20wt% to 40wt% of a silane-based sol-gel resin in which three types of
silane compounds are crosslinked; 0.2wt% to 0.4wt% of a rust-inhibiting and corrosion-resistant
agent; 0.1wt% to 0.3wt% of a molybdenum-based compound; 5wt% to 10wt% of a water-soluble
cationic urethane resin; 0.5wt% to 2.0wt% of a silane coupling agent; 0.5wt% to 2.0wt%
of an Al compound; and 25.3wt% to 63.7wt% of water.
[0024] In the method, the chromium phosphate (A) and the chromium nitrate (B) may satisfy
a content ratio A/ (A+B) of 0.3 to 0.6.
[0025] In the method, the rust-inhibiting and corrosion-resistant agent may be one or more
selected from the group consisting of a fluorine-based rust inhibitor, a vanadium-based
rust inhibitor, a cerium salt-based rust inhibitor, and a cobalt-based rust inhibitor.
[0026] In the method, the molybdenum-based compound may be one or more selected from the
group consisting of molybdenum oxide, molybdenum sulfide, molybdenum acetate, molybdenum
phosphate, molybdenum carbide, molybdenum chloride, molybdenum fluoride, and molybdenum
nitride.
[0027] In the method, the silane coupling agent may be one or more selected from the group
consisting of 2-(3,4-epoxycyclohexyl)-ethyl trimethoxysilane, 3-glycidoxypropyl trimethoxysilane,
3-glycidoxypropyl methyldiethoxysilane, 3-glycidoxypropyl triethoxysilane, N-2-(aminoethyl)-3-aminopropyl
methyldimethoxysilane, N-2-(aminoethyl)-3-aminopropyl trimethoxysilane, N-2-(aminoethyl)-3-aminopropyl
triethoxysilane, 3-aminopropyl trimethoxysilane, 3-aminopropyl triethoxysilane, 3-ureidopropyl
trimethoxysilane, and 3-ureidopropyl trialkoxysilane.
[0028] In the method, the Al compound may be one or more selected from the group consisting
of aluminum hydroxide, aluminum chloride, aluminum nitride, aluminum sulfate, aluminum
isopropoxide, and aluminum phosphate.
[0029] In the method, the three types of silane compounds may be one type of first silane
selected from the group consisting of tetraethylorthosilicate, tetramethoxysilane,
methyltrimethoxysilane, methyltriethoxysilane, dimethyldimethoxysilane, and dimethyldiethoxysilane;
one type of second silane selected from the group consisting of 3-glycidoxypropyl
trimethoxysilane, 2-(3,4-epoxycyclohexyl)-ethyl trimethoxysilane, 3-glycidoxypropyl
trimethoxysilane, and 3-glycidoxypropyl methyldiethoxysilane; and one type of third
silane selected from the group consisting of 3-aminopropyl triethoxysilane, N-2-(aminoethyl)-3-aminopropyl
methyldimethoxysilane, N-2-(aminoethyl)-3-aminopropyl trimethoxysilane, and N-2-(aminoethyl)-3-aminopropyl
triethoxysilane.
[0030] In the method, the surface-treatment solution composition may be coated to a thickness
of 2.14µm to 3.57µm.
[0031] In the method, the coating may be performed by any one method selected from the group
consisting of roll coating, spraying, immersion, spray squeezing, and immersion squeezing.
[0032] In the method, the drying may be performed at a temperature of 50°C to 60°C on the
basis of a Peak Metal Temperature (PMT) of a steel sheet.
[0033] In the method, the drying may be performed in a hot-air drying furnace or an induction
heating furnace.
[0034] In the method, the hot-air drying furnace may have an internal temperature of 100°C
to 200°C.
[0035] In the method, the induction heating furnace may be applied with an electric current
of 1,000A to 3,500A.
[0036] In the method, air-cooling the trivalent chromate film layer may be further included.
[0037] In the method, the manufacturing method may be a continuous process, wherein the
continuous process may have a speed of 80mpm to 100mpm.
[Advantageous Effects]
[0038] According to an aspect of the present disclosure, the zinc-based plated steel sheet
surface-treated with the surface-treatment solution composition containing trivalent
chromium and an inorganic compound may have an excellent effect on corrosion resistance,
blackening resistance, fingerprint resistance, piping oil infiltration, and alkali
resistance.
[Best Mode for Invention]
[0039] Hereinafter, preferred embodiments of the present disclosure will be described with
reference to various embodiments. However, embodiments of the present disclosure may
be modified into various other embodiments, and the scope of the present disclosure
is not limited to embodiments described below.
[0040] The present disclosure relates to a surface-treatment solution composition containing
trivalent chromium and an inorganic compound, a zinc-based plated steel sheet surface-treated
using the same, and a method for producing the zinc-based plated steel sheet.
[0041] A surface-treatment solution composition according to an embodiment of the present
disclosure includes 10wt% to 20wt% of a trivalent chromium compound; 20wt% to 40wt%
of a silane-based sol-gel resin; 0.2wt% to 0.4wt% of a rust-inhibiting and corrosion-resistant
agent; 0.1wt% to 0.3wt% of a molybdenum-based compound; 5wt% to 10wt% of a water-soluble
cationic urethane resin; 0.5wt% to 2.0wt% of a silane coupling agent; 0.5wt% to 2.0)wt%
of an Al compound; and 25.3wt% to 63.7wt% of water, and the trivalent chromium compound
may satisfy a content ratio A/(A+B) of 0.3 to 0.6.
[0042] A zinc-based plated steel sheet surface-treated with the surface-treatment solution
composition containing trivalent chromium according to an embodiment of the present
disclosure may have an excellent effect on corrosion resistance, blackening resistance,
fingerprint resistance, piping oil infiltration, and alkali resistance. In addition,
damage to the human body and environmental pollution may be prevented, by containing
trivalent chromium as a main component, harmless to the human body, without an inclusion
of hexavalent chromium, an environmentally hazardous substance.
[0043] The trivalent chromium compound may be a component contained in the surface-treatment
solution composition of the present disclosure as a main component, may have a self-healing
effect and self-lubricating properties similar to hexavalent chromium, and may function
to secure corrosion resistance and blackening resistance. The trivalent chromium compound
contained in the composition of the present disclosure may include chromium phosphate
(A) and chromium nitrate (B).
[0044] As the ratio of chromium phosphate increases, corrosion resistance may be improved,
while blackening resistance may be deteriorated. As the chromium nitrate ratio increases,
blackening resistance may be improved, while corrosion resistance may be deteriorated.
For example, when the film is formed with the chromium phosphate, a phosphoric acid
component may not be volatilized. Therefore, a chromium phosphate film may be formed
on a surface of the film, and corrosion resistance may be improved. Blackening resistance
of the chromium phosphate may be deteriorated due to a hygroscopic property of the
chromium phosphate. When the film is formed with the chromium nitrate, a nitric acid
component may be mostly volatilized and may not affect blackening resistance. As the
content of chromium nitrate increases, the film of chromium phosphate may barely be
formed on a surface of the film, and corrosion resistance may be deteriorated.
[0045] Therefore, according to one embodiment of the present disclosure, the content ratio
A/ (A+B) of the chromium phosphate (A) and the chromium nitrate (B) may satisfy 0.3
to 0.6. When the content ratio is less than 0.3, corrosion resistance may be deteriorated
after processing. When the content ratio exceeds 0.6, blackening resistance may be
deteriorated.
[0046] The total content of the trivalent chromium compound containing chromium phosphate
(A) and chromium nitrate (B) is preferably 15wt% to 30wt%. When the content of the
trivalent chromium compound is less than 10wt%, a firm and insoluble film layer may
become thinner. Therefore, since it may be difficult to effectively block penetration
of moisture through a surface of the plated steel sheet requiring corrosion resistance,
blackening may be caused and corrosion resistance may also be deteriorated. When the
content of the trivalent chromium compound exceeds 20wt%, the content of the silane-based
sol-gel resin to be added for improving corrosion resistance, the content of the rust-inhibiting
and corrosion-resistant agent, the content of the water-soluble cationic urethane
resin serving as a binder, the content of the silane coupling agent, and the content
of the Al compound may be relatively decreased. Therefore, there may be a problem
in which it is difficult to secure sufficient corrosion resistance and blackening
resistance.
[0047] The surface-treatment solution composition of the present disclosure may include
a silane-based sol-gel resin for improving the corrosion resistance of the surface-treated
zinc-based plated steel sheet. The silane-based sol-gel resin may be synthesized by
using three types of silane compounds. In this case, two types of silane compounds
may be crosslinked by one silane compound. In the case of using the silane-based sol-gel
resin synthesized in advance, as in the present disclosure, the content of water may
be reduced as compared with a cross-linking reaction during a heat treatment for forming
the film.
[0048] The three types of silane compounds used in the synthesis of the sol-gel resin of
the present disclosure uses one type of first silane selected from the group consisting
of tetraethylorthosilicate, tetramethoxysilane, methyltrimethoxysilane, methyltriethoxysilane,
dimethyldimethoxysilane, and dimethyldiethoxysilane; one type of second silane selected
from the group consisting of 3-glycidoxypropyl trimethoxysilane, 2-(3,4-epoxycyclohexyl)-ethyl
trimethoxysilane, 3-glycidoxypropyl trimethoxysilane, and 3-glycidoxypropyl methyldiethoxysilane;
and one type of third silane selected from the group consisting of 3-aminopropyl triethoxysilane,
N-2-(aminoethyl)-3-aminopropyl methyldimethoxysilane, N-2-(aminoethyl)-3-aminopropyl
trimethoxysilane, and N-2-(aminoethyl)-3-aminopropyl triethoxysilane.
[0049] The silane-based sol-gel resin may be prepared by dropping the three types of mixed
silanes in a mixed solution containing ethanol, water, and formic acid. More specifically,
the mixed solution may contain ethanol and water at a weight ratio of 10-30:40-60.
When a relative small amount of ethanol beyond the above range is included, stability
of the silane-based sol-gel resin may be lowered to deteriorate solution stability
thereof. When an amount of ethanol exceeding beyond the above range is included, there
is a problem in that roll workability may be deteriorated due to excessive volatilization
of ethanol during formation of the final coating.
[0050] Formic acid may be mixed with 60wt% to 80wt% of water and ethanol in an amount of
1wt% to 1.5wt%. When the content thereof is less than 1wt%, hydrolysis does not proceed
sufficiently, and the silane may be not stably dispersed. When the content thereof
exceeds 1.5wt%, there is a problem that the formic acid in the dry film may remain
to deteriorate physical properties of the product.
[0051] To the mixed solution containing water, ethanol, and formic acid as described above,
the above-mentioned three types of silane compounds may be added to prepare a silane-based
sol-gel resin. At this time, the three types of silanes may include the first, second,
and third silanes in amounts of 10wt% to 12wt%, 10wt% to 12wt%, and 5wt% to 7wt%,
respectively. When the content ratio of the first silane is lower than the above range,
it may not provide a sufficient crosslinking ability and thus there may be a problem
in forming a final film. When the content ratio of the first silane exceeds the above
range, the solution stability may be deteriorated due to excessive crosslinking. When
the content ratios of the second silane and the third silane are outside of the above
range, and the content of either one is in a relative small or large amount, the solution
stability may be deteriorated due to presence of unreacted functional group.
[0052] In preparing the silane-based sol-gel resin, it is preferable to add the three types
of silane compounds to the mixed solution of water, ethanol, and formic acid over
a period of about 1 hour to 3 hours. At this time, it is preferable to cool the reactor
such that the temperature inside the reactor may be maintained at 30°C or less. After
completion of the addition, the sol-gel resin may be prepared by stirring at room
temperature for about 24 hours to 36 hours.
[0053] The content of the silane-based sol-gel resin is preferably 20wt% to 40wt%. When
the content of the silane-based sol-gel resin is less than 20wt%, the corrosion factor
may be not effectively blocked, and the corrosion resistance and blackening resistance
may be deteriorated. When the content thereof exceeds 40wt%, the content of the silane-based
sol-gel resin to be added for improving corrosion resistance, the content of the rust-inhibiting
and corrosion-resistant agent, the content of the water-soluble cationic urethane
resin serving as a binder, the content of the silane coupling agent, and the content
of the Al compound may be relatively decreased. Therefore, there may be a problem
in which corrosion resistance may be deteriorated.
[0054] The rust-inhibiting and corrosion-resistant agent is included for improving corrosion
resistance of the zinc-based plated steel sheet surface-treated with the surface-treatment
solution composition of the present disclosure. Preferably, the rust-inhibiting and
corrosion-resistant agent is one or more selected from the group consisting of a fluorine-based
rust inhibitor, a vanadium-based rust inhibitor, a cerium salt-based rust inhibitor,
and a cobalt-based rust inhibitor.
[0055] The content of the rust-inhibiting and corrosion-resistant agent is preferably 0.2wt%
to 0.4wt%. When the content of the rust-inhibiting and corrosion-resistant agent is
less than 0.2wt%, there may be a problem in which it is difficult to secure corrosion
resistance. When the content of the rust-inhibiting and corrosion-resistant agent
exceeds 0.4wt%, there may be a problem in which it is difficult to secure blackening
resistance and alkali resistance.
[0056] The molybdenum-based compound is added to improve blackening resistance of the zinc-based
plated steel sheet surface-treated with the surface-treatment solution composition
according to the present disclosure. The molybdenum-based compound is one or more
selected from the group consisting of molybdenum oxide, molybdenum sulfide, molybdenum
acetate, molybdenum phosphate, molybdenum carbide, molybdenum chloride, molybdenum
fluoride, and molybdenum nitride.
[0057] The content of the molybdenum-based compound is preferably 0.1wt% to 0.3wt%. When
the content of the molybdenum-based compound is less than 0.1wt%, there may be a problem
in which it is difficult to secure blackening resistance. When the content of the
molybdenum-based compound exceeds 0.3wt%, an effect of improving blackening resistance
may be insignificant, and corrosion resistance may be greatly deteriorated.
[0058] The water-soluble cationic urethane resin may be added for formation of a firm film
layer of the zinc-based plated steel sheet surface-treated with the surface-treatment
solution composition of the present disclosure. The water-soluble cationic urethane
resin may improve a film-forming action which may be insufficient only by inorganic
components, to form a firm film layer. Therefore, alkali resistance, piping oil infiltration,
and fingerprint resistance may be improved.
[0059] The content of the water-soluble cationic urethane resin is preferably 5wt% to 10wt%.
When the content of the water-soluble cationic urethane resin is less than 5wt%, the
film-forming action may be deteriorated and may not form a firm film layer. Therefore,
it may be difficult to secure alkali resistance, piping oil infiltration, and fingerprint
resistance. When the content of the water-soluble cationic urethane resin exceeds
10wt%, the contents of the trivalent chromium compound and the sol-gel resin are relatively
reduced. Therefore, corrosion resistance and blackening resistance properties may
be reduced, which is not preferable.
[0060] The silane coupling agent may be added to crosslink the inorganic component and the
organic component, to promote drying, and to ensure high corrosion resistance. The
type of the silane coupling agent is not particularly limited, and, for examples,
may be one or more selected from the group consisting of 2-(3,4-epoxycyclohexyl)-ethyl
trimethoxysilane, 3-glycidoxypropyl trimethoxysilane, 3-glycidoxypropyl methyldiethoxysilane,
3-glycidoxypropyl triethoxysilane, N-2-(aminoethyl)-3-aminopropyl methyldimethoxysilane,
N-2-(aminoethyl)-3-aminopropyl trimethoxysilane, N-2-(aminoethyl)-3-aminopropyl triethoxysilane,
3-aminopropyl trimethoxysilane, 3-aminopropyl triethoxysilane, 3-ureidopropyl trimethoxysilane,
and 3-ureidopropyl trialkoxysilane.
[0061] The content of the silane coupling agent is preferably 0.5wt% to 2.0wt%. When the
content of the silane coupling agent is less than 0.5wt%, alkali resistance and piping
oil infiltration may be deteriorated. When the content of the silane coupling agent
exceeds 2.0wt%, the film may become too dry to form an excessively hard film. Therefore,
processed part corrosion resistance may be reduced, and piping oil infiltration may
be deteriorated.
[0062] The Al compound is added to improve the blackening resistance of the zinc-based plated
steel sheet surface-treated with the surface-treatment solution composition of the
present disclosure. The Al compound is one or more selected from the group consisting
of aluminum hydroxide, aluminum chloride, aluminum nitride, aluminum sulfate, aluminum
isopropoxide, and aluminum phosphate.
[0063] The content of the Al compound is preferably 0.5wt% to 2wt%. When the content of
the Al compound is less than 0.5wt%, it may be difficult to secure blackening resistance.
When the content thereof exceeds 2wt%, the effect of improving blackening resistance
may be insignificant, and the corrosion resistance may be greatly deteriorated.
[0064] The water may be a solvent for the surface-treatment solution composition of the
present disclosure. The water may be used for diluting resins. The water refers to
deionized water or distilled water. The solvent may be contained as a remainder in
addition to the respective components of the present disclosure, and the content thereof
is preferably 25.3wt% to 63.7wt%.
[0065] According to another embodiment of the present disclosure, a zinc-based plated steel
sheet surface-treated with the surface-treatment solution composition containing the
trivalent chromium and the inorganic compound, as described above, and a method of
manufacturing the same may be provided.
[0066] The surface-treated zinc-based plated steel sheet includes a steel sheet, a zinc-based
plated layer formed on at least one surface of the steel sheet, and a trivalent chromate
film layer formed on the zinc-based plated layer. The trivalent chromate film layer
includes 31.47wt% to 35.23wt% of a trivalent chromium compound; 32.49wt% to 36.36wt%
of a silane-based sol-gel resin; 2.03wt% to 2.27wt% of a rust-inhibiting and corrosion-resistant
agent; 1.14wt% to 1.52wt% of a molybdenum-based compound; 12.18wt% to 13.64wt% of
a urethane resin; 5.68wt% to 10.15wt% of a silane coupling agent; and 5.68wt% to 10.15wt%
of an Al compound. Further, the trivalent chromium compound may contain chromium phosphate
(A) and chromium nitrate (B), and the content ratio A/ (A+B) thereof may satisfy 0.89
to 0.95.
[0067] The trivalent chromate film layer may be a coating layer on which the above-described
surface-treatment solution composition is dried, and may correspond to components
remaining after volatile substances contained in the trivalent chromate film layer
are all volatilized. As a result, the trivalent chromate film layer may not contain
water as a solvent, and may not include water contained in the trivalent chromate
compound, the silane-based sol-gel resin and the urethane resin. Therefore, the components
contained in the trivalent chromate film layer may correspond to amounts based on
100wt% of the total solids content.
[0068] The trivalent chromium compound may contain chromium phosphate (A) and chromium nitrate
(B), the content ratio A/ (A+B) thereof may satisfy 0.89 to 0.95, and the content
thereof may be 31. 47wt% to 35. 23wt% based on the solids content. When the content
of the trivalent chromium compound is less than 31.47wt%, a firm and insoluble film
layer may become thinner. Therefore, since it may be difficult to effectively block
penetration of moisture through a surface of the plated steel sheet requiring corrosion
resistance, blackening may be caused and corrosion resistance may also be deteriorated.
When the content of the trivalent chromium compound exceeds 35.23wt%, the content
of the rust inhibitor to be added for improving corrosion resistance, the content
of the water-soluble cationic urethane resin serving as a binder, and the content
of the silane coupling agent may be relatively decreased. Therefore, there may be
a problem in which it is difficult to secure sufficient corrosion resistance and blackening
resistance.
[0069] The chromium phosphate (A) and chromium nitrate (B) may satisfy a content ratio A/
(A+B) of 0.89 to 0.95. When the content ratio is less than 0.89, corrosion resistance
may be reduced after processing. When the content ratio exceeds 0.95, blackening resistance
may be reduced.
[0070] In the surface-treating solution composition, the chromium phosphate (A) and the
chromium nitrate (B) may satisfy a content ratio A/(A+B) of 0.3 to 0.6. The chromium
phosphate and chromium nitrate may contain a relatively large amount of water. The
content ratio of the chromium phosphate (A) and the chromium nitrate (B) contained
in the film layer may be within a range of 0.89 to 0.95 by way of removing water in
operations of coating and drying the surface-treatment solution composition on the
zinc-based plated steel sheet to form a film layer.
[0071] The content of the silane-based sol-gel resin may be preferably 32.49wt% to 36.36wt%
based on the solids content. When the content of the silane-based sol-gel resin may
be less than 32.49wt%, corrosion resistance and black degeneration deteriorate because
the corrosion factor may be not effectively blocked. When the content may be more
than 36.36wt%, the trivalent chromium compound, the content of the water-soluble cationic
urethane resin serving as a binder, the silane coupling agent and the Al compound
may be relatively decreased, and corrosion resistance may be rather lowered.
[0072] The content of the rust-inhibiting and corrosion-resistant agent is preferably 2.03wt%
to 2.27wt% based on the solids content. When the content of the rust-inhibiting and
corrosion-resistant agent is less than 2.03wt%, there may be a problem in which it
is difficult to secure corrosion resistance. When the content of the rust-inhibiting
and corrosion-resistant agent exceeds 2.27wt%, there may be a problem in which it
is difficult to secure blackening resistance and alkali resistance. Meanwhile, the
content of the molybdenum-based compound is preferably 1.14wt% to 1.52wt%, based on
the solids content. When the content of the molybdenum-based compound is less than
1.14wt%, there may be a problem in which it is difficult to secure blackening resistance.
When the content of the molybdenum-based compound exceeds 1.52wt%, an effect of improving
blackening resistance may be insignificant, and corrosion resistance may be greatly
deteriorated.
[0073] The content of the urethane resin is preferably 12.18wt% to 13.64wt% based on the
solids content. When the content of the urethane resin is less than 12.18wt%, the
film-forming action may be deteriorated and may not form a firm film layer. Therefore,
there may be a problem in which it difficult to secure alkali resistance, piping oil
infiltration, and fingerprint resistance. When the content thereof exceeds 13.64wt%,
the contents of the trivalent chromium compound and the sol-gel resin may be relatively
reduced, and corrosion resistance and blackening resistance properties may be reduced,
which is not preferable. The surface-treatment solution composition according to the
present disclosure may contain a water-soluble cationic urethane resin. The water-soluble
cationic urethane resin may be detected as a urethane resin, not in a cationic state
thereof, through a coating-drying process on the zinc-based plated steel sheet.
[0074] The content of the silane coupling agent is preferably 5.68wt% to 10.15wt%. When
the content of the silane coupling agent is less than 5.68wt%, alkali resistance and
piping oil infiltration may be deteriorated. When the content of the silane coupling
agent exceeds 10.15wt%, the film may become too dry to form an excessively hard film.
Therefore, processed part corrosion resistance may be reduced, and piping oil infiltration
may be deteriorated.
[0075] The content of the Al compound is preferably 5.68wt% to 10.15wt%. When the content
of the Al compound is less than 5.68wt%, there may be a problem that it is difficult
to secure blackening resistance. When the Al compound exceeds 10.15wt%, an effect
of improving blackening resistance may be insignificant, and the corrosion resistance
may be greatly deteriorated.
[0076] According to an embodiment of the present disclosure, there may be provided a method
for producing the zinc-based plated steel sheet, comprising: preparing a zinc-based
plated steel sheet on which a zinc-based plated layer is formed; coating the surface-treatment
solution composition on the zinc-based plated layer; and drying the coated surface-treatment
solution composition to form a trivalent chromate film layer.
[0077] The surface-treatment solution composition may include 10wt% to 20wt% of a trivalent
chromium compound containing chromium phosphate (A) and chromium nitrate (B) and having
a content ratio A/(A+B) of 0.3 to 0.6; 20wt% to 40wt% of a silane-based sol-gel; 0.2wt%
to 0.4wt% of a rust-inhibiting and corrosion-resistant agent; 0.1wt% to 0.3wt% of
a molybdenum-based compound; 5wt% to 10wt% of a water-soluble cationic urethane resin;
0.5wt% to 2.0wt% of a silane coupling agent; 0.5wt% to 2.0wt% of an Al compound; and
25.3wt% to 63.7wt% of water. The technical meaning of the content range of each component
contained in the surface-treatment solution composition may be the same as described
above.
[0078] According to an embodiment of the present disclosure, the surface-treatment solution
composition is coated to a thickness of 2.14µm to 3.57µm. The surface-treatment solution
composition coated to such a thickness may be a thickness of the dried coating layer
of 0.3µm to 0.5µm through the drying operation. When a thickness of the surface-treatment
solution composition is less than 2.14µm, there may arise a problem in which the surface-treatment
solution composition may be applied thinly on the peak portion of the roughness of
the steel sheet to reduce corrosion resistance. When a thickness of the surface-treatment
solution composition exceeds 3.57µm, weldability, workability, and the like, may be
deteriorated.
[0079] The method of coating the surface-treatment solution composition is not particularly
limited as long as it is a commonly used coating method. For example, it is preferable
to perform any one coating method selected from roll coating, spraying, immersion,
spray squeezing, and immersion squeezing.
[0080] It is preferable that the drying the surface-treatment solution composition coated
on the zinc-based plated steel sheet is performed at a temperature of 50°C to 60°C
on the basis of a Peak Metal Temperature (PMT) of a steel sheet. When the drying temperature
is less than 50°C on the basis of a Peak Metal Temperature (PMT) of a steel sheet,
the drying may not be performed perfectly, and alkali resistance and piping oil infiltration
may be deteriorated. When the drying temperature exceeds 60°C, the steel sheet may
be not sufficiently cooled during the cooling process (air cooling) in air, and blackening
resistance may be deteriorated due to the condensation phenomenon by a packaging operation.
[0081] The drying operation is preferably carried out in a hot-air drying furnace or an
induction heating furnace. When the surface-treating coating composition is dried
using the hot-air drying furnace, the hot-air drying furnace preferably has an internal
temperature of 100°C to 200°C. Meanwhile, when the surface-treating coating composition
is dried using the induction heating furnace, an electric current applied to the induction
heating furnace is preferably 1,000A to 3,500A, and more preferably 1,500A to 3,000A.
When an internal temperature of the hot-air drying furnace is less than 100°C or the
electric current applied to the induction heating furnace is less than 1,000A, the
surface-treating coating composition may not be completely dried, and alkali resistance
and piping oil infiltration may be deteriorated. When an internal temperature of the
hot-air drying furnace is less than 200°C or the electric current applied to the induction
heating furnace exceeds 3, 500A, the steel sheet may be not sufficiently cooled during
the cooling process (air cooling) in air, and blackening resistance may be deteriorated
due to the condensation phenomenon by a packaging operation.
[0082] In addition, a zinc-based plated steel sheet, which is finally surface-treated by
drying the surface-treatment solution composition to form a trivalent chromate film
layer and air-cooling the trivalent chromate film layer, may be provided.
[0083] The method for producing a surface-treated zinc-based plated steel sheet according
to an embodiment of the present disclosure may be a continuous process, and a speed
of the continuous process is preferably 80mpm to 100mpm. When a speed of the continuous
process is less than 80mpm, a problem in which productivity is reduced may occur.
When a speed of the continuous process exceeds 100mpm, a solution may be scattered
in the drying operation of the solution composition for steel sheet surface treatment,
and thereby surface defects may occur.
[Mode for Invention]
[0084] Hereinafter, the present disclosure will be described more specifically with reference
to specific examples. The following examples are provided to aid understanding of
the present disclosure, and the scope of the present disclosure is defined by the
appended claims.
EXAMPLE
1. Change in Properties according to Content of Trivalent Chromium Compound
[0085] A surface-treatment solution composition containing trivalent chromium according
to the present disclosure includes chromium nitrate and chromium phosphate as a trivalent
chromium compound; a silane-based sol-gel resin; a cobalt-based rust inhibitor as
a rust-inhibiting and corrosion-resistant agent; molybdenum chloride as a molybdenum-based
compound; a water-soluble cationic urethane resin (a urethane resin having a cation,
which may be used in an acidic state); N-2-(aminoethyl)-3-aminopropyl methyldimethoxysilane
and 3-ureidopropyl trimethoxysilane (1:1 mixture) as a silane coupling agent; aluminum
nitride as an Al compound; and water. The components were mixed in the amounts shown
in Table 2 below (based on the solids content of the composition).
[0086] 20wt% of ethanol and 50.81wt% of water were added to a flask, 1.36wt% of formic acid
was further added thereto, and the mixture was stirred. Then, 11.06wt% of 3-glycidoxypropyl
trimethoxysilane, 6.06wt% of 3-aminopropyl triethoxysilane, and 10.7wt% of tetraethyl
orthosilicate were mixed with the stirred mixture, and the thus obtained mixture was
added to the flask drop-wise for 2 hours. At this time, a reactor was cooled, such
that an internal temperature of the reactor was kept below 30°C, and the drop-wisely
added mixture was stirred at room temperature for 24 hours after completion of the
drop-wise addition, to obtain the silane-based sol-gel resin.
[Table 1]
| |
Solution Component (wt%) |
Solid of Raw Material (wt%) |
Component in Dry Film (wt%) |
| Range of Composition |
Min. |
Max. |
Min. |
Max. |
| Trivalent Chromium Compound |
10 |
20 |
31 |
35.23 |
31.47 |
| Sol-Gel Resin |
20 |
40 |
16 |
36.36 |
32.49 |
| Rust-Inhibiting and Corrosion-resistant agent |
0.2 |
0.4 |
100 |
2.27 |
2.03 |
| Molybdenum-based Compound |
0.1 |
0.3 |
100 |
1.14 |
1.52 |
| Water-Soluble Cationic Urethane Resin |
5 |
10 |
24 |
13.64 |
12.18 |
| Silane Coupling Agent |
0.5 |
2 |
100 |
5.68 |
10.15 |
| Al Compound |
0.5 |
2 |
100 |
5.68 |
10.15 |
| Water |
63.7 |
25.3 |
0 |
0 |
0 |
| Total |
100 |
100 |
- |
100 |
100 |
[0087] In the following examples, cases in which the surface-treatment solution composition
according to the present disclosure satisfies the specified content range shown in
Table 1 below were described as Inventive Examples, cases in which one or more components
do not satisfy the specified content range shown in Table 1 were described as Comparative
Examples, and these cases are presented in Tables 2 to 8.
[0088] In addition, the content of each component shown in Tables 2 to 8 below was described
based on "solids content." The content of each component was described, based on 100%
of the solids content which remains after the removal of water contained in the trivalent
chromium compound, the sol-gel resin, and the water-soluble cationic urethane resin
in the form of a dry film, in addition to removal of water as a solvent contained
in the solution composition of the present disclosure in the form of a dry film.
[0089] A molten zinc-based plated steel sheet was cut to have a size of 7 cm × 15 cm (width
X length), and oil was removed therefrom. Then, solution compositions for each of
Inventive and Comparative Examples, as described in Table 2 below, were bar-coated
on the steel sheet in a dry film layer thickness of 0.4µm, and dried under conditions
of PMT 60°C to prepare specimens.
[0090] Flat sheet corrosion resistance, processed part corrosion resistance, and blackening
resistance of the prepared specimens were evaluated. The evaluation results are presented
in Table 2 below. The evaluation methods for flat sheet corrosion resistance, processed
part corrosion resistance, and blackening resistance were as follows.
<Flat sheet corrosion resistance>
[0091] Based on the method specified in ASTM B117, the rate of occurrence of white rust
in the steel sheet was measured over time after the specimens were treated. The evaluation
criteria are as follows:
Ⓞ: 144 hours or more of white rust occurrence time
○: 96 hours or more and less than 144 hours of white rust occurrence time
Δ: less than 55 hours or more and less than 96 hours of white rust occurrence time
X: Less than 55 hours of white rust occurrence time
<Processed Part Corrosion Resistance>
[0092] The specimens were pushed up to a height of 6mm using an Erichsen tester, and a frequency
of occurrence of white rust was measured after 24 hours. The evaluation criteria are
as follows:
Ⓞ: Less than 5% frequency of occurrence of white rust after 24 hours
Δ: 5% or more and less than 7% frequency of occurrence of white rust after 24 hours
X: Greater than 7% frequency of occurrence of white rust after 24 hours
<Blackening Resistance>
[0093] The color change (color difference: ΔE) of the specimens before and after the test
was observed by allowing the specimens in an air-conditioning equipment maintaining
at 50°C and a relative humidity of 95% for 120 hours. The evaluation criteria are
as follows:
Ⓞ: ΔE ≤ 2
○: 2 < ΔE ≤ 3
Δ: 3 < ΔE ≤ 4
X: ΔE > 4
[Table 2]
| |
Composition (wt%) |
Flat Sheet Corrosi on Resista nce |
Processe d Part Corrosio n Resistan ce |
Blacke ning Resist ance |
| Cr3+ Compound |
Sol-Gel Resin |
Rust-Inhib iting and Corrosion-resistant agent |
Molybden um-based Compound |
Urethane Resin |
Silane Couplin g Agent |
Al Compound |
| 1CE1 |
30.52 |
36.22 |
2.16 |
1.48 |
13.53 |
9.15 |
6.94 |
× |
× |
× |
| 2IE1 |
31.47 |
35.27 |
2.12 |
1.42 |
13.42 |
10.05 |
6.25 |
○ |
Ⓞ |
○ |
| IE2 |
33.12 |
33.62 |
2.15 |
1.36 |
13.21 |
8.36 |
8. 18 |
Ⓞ |
Ⓞ |
Ⓞ |
| IE3 |
34.15 |
32.59 |
2.13 |
1.28 |
12.52 |
7.24 |
10. 09 |
Ⓞ |
Ⓞ |
Ⓞ |
| IE4 |
35.23 |
32.59 |
2.14 |
1. 18 |
12.35 |
7.00 |
9.51 |
○ |
Ⓞ |
○ |
| CE2 |
36.25 |
32.59 |
2.17 |
1.16 |
12.25 |
6.43 |
9.15 |
× |
× |
○ |
1CE: Comparative Example, 2 IE: Inventive Example
* The content of the composition may be based on 14% of the solids content. |
[0094] In Table 2 above, a content ratio A/ (A+B) of the chromium phosphate and the chromium
nitrate in the trivalent chromium compound (Cr3+ compound) was 3:0.2.
[0095] As shown in Table 2 above, when the content of the trivalent chromium compound satisfied
the content proposed by the present disclosure (Inventive Examples 1 to 4), all of
the properties exhibited good or higher results.
[0096] Meanwhile, when the trivalent chromium compound was added in a relatively small amount
(Comparative Example 1), flat sheet corrosion resistance, processed part corrosion
resistance, and blackening resistance exhibited poor results. When the trivalent chromium
compound was added in a relatively larger amount (Comparative Example 2), all of the
properties, except for blackening resistance, exhibited poor results.
2. Change in Properties according to Ratios of Chromium Phosphate (III) and Chromium
Nitrate (III) contained in Trivalent Chromium Compound
[0097] Solution compositions for steel sheet surface treatment containing trivalent chromium
according to Inventive Example 3 were used, except that ratios of chromium phosphate
(III) and chromium nitrate (III) were controlled to the ratios of chromium phosphate
and chromium nitrate as shown in Table 3.
[0098] Specifically, a chromium phosphate compound and chromium nitrate were added to distilled
water, reacted at 80°C for 1 hour, and then cooled to room temperature to prepare
a trivalent chromium compound (chromium phosphate and chromium nitrate). At this time,
the content of each component was controlled, such that ratios of the chromium phosphate
and chromium nitrate satisfied the specified ratios shown in Table 3 below.
[0099] A molten zinc-based plated steel sheet was cut to have a size of 7 cm × 15 cm (width
X length), and oil was removed therefrom. Then, a solution composition for steel sheet
surface treatment containing trivalent chromium, prepared in Table 3, was bar-coated
on the steel sheet in a dry film layer thickness of 0.4µm, and dried under conditions
of PMT 60°C to prepare specimens.
[0100] Flat sheet corrosion resistance and blackening resistance of the prepared specimens
were evaluated. The evaluation results are presented in Table 3.
[Table 3]
| |
Cr3+ Compound (wt%) |
Content Ratio of Chromium Phosphate and Chromium Nitrate |
Flat Sheet Corrosion Resistance |
Blackening Resistance |
| Chromium Phosphate |
Chromium Nitrate |
| 1CE3 |
34.15 |
7 |
0 |
○ |
× |
| CE4 |
34.15 |
0 |
0.35 |
× |
○ |
| CE5 |
34.15 |
1 |
0.3 |
× |
○ |
| 2IES |
34.15 |
2 |
0.25 |
○ |
Ⓞ |
| IE6 |
34.15 |
3 |
0.2 |
Ⓞ |
Ⓞ |
| IE7 |
34.15 |
4 |
0.2 |
Ⓞ |
○ |
| CE6 |
34.15 |
5 |
0.1 |
○ |
× |
1CE: Comparative Example, 2 IE: Inventive Example
* The content of the composition may be based on 14% of the solids content. |
[0101] As shown in Table 3 above, corrosion resistance may be improved as a ratio of chromium
phosphate is increased, while blackening resistance may be improved as a ratio of
chromium nitrate is increased. When the ratio of chromium phosphate to chromium nitrate
is less than or more than the ratio of chromium phosphate and chromium nitrate shown
in the present disclosure, the corrosion resistance or blackening resistance tends
to be poor.
3. Change in Properties depending on Content of Sol-Gel resin
[0102] A surface-treatment solution composition containing trivalent chromium according
to the present disclosure includes chromium nitrate and chromium phosphate as a trivalent
chromium compound; a sol-gel resin prepared by the method mentioned in the description
of the present disclosure; a cobalt-based rust inhibitor as a rust-inhibiting and
corrosion-resistant agent; molybdenum chloride as a molybdenum-based compound; a water-soluble
cationic urethane resin (a urethane resin having a cation, which may be used in an
acidic state); N-2-(aminoethyl)-3-aminopropyl methyldimethoxysilane and 3-ureidopropyl
trimethoxysilane (1:1 mixture) as a silane coupling agent; aluminum nitride as an
Al compound; and water. The components were mixed in the amounts shown in Table 2
below (based on the solids content of the composition).
[0103] A molten zinc-based plated steel sheet was cut to have a size of 7 cm × 15 cm (width
X length), and oil was removed therefrom. Then, a trivalent chromium surface-treating
solution composition, prepared in Table 4 below, was bar-coated on the steel sheet
in a dry film layer thickness of 0.4µm, and dried under conditions of PMT 60°C to
prepare specimens.
[0104] Flat sheet corrosion resistance, processed part corrosion resistance, blackening
resistance, and alkali resistance of the prepared specimens were evaluated. The evaluation
results are presented in Table 4 below. The evaluation methods for flat sheet corrosion
resistance, processed part corrosion resistance, and blackening resistance were as
follows.
[Table 4]
| |
Composition (wt%) |
Flat Sheet Corrosion Resistance |
Processed Part Corrosion Resistance |
Blackening Resistance |
| Sol-Gel Resin |
Cr3+ Compound |
Rust-Inhibiting and Corrosion-resi stant agent |
Molybden um-based Compound |
Urethane Resin |
Silane Coupling Agent |
Al Compound |
| 1CE7 |
31.22 |
34.82 |
2.16 |
1.48 |
13.53 |
9.85 |
6.94 |
× |
× |
× |
| 2IE8 |
32.49 |
34.25 |
2.12 |
1.42 |
13.42 |
10.05 |
6.25 |
○ |
Ⓞ |
○ |
| IE9 |
33.62 |
33.12 |
2.15 |
1.36 |
13.21 |
8.36 |
8.18 |
Ⓞ |
Ⓞ |
Ⓞ |
| IE10 |
35.35 |
32.39 |
2.13 |
1.28 |
12.52 |
7.24 |
9.09 |
Ⓞ |
Ⓞ |
Ⓞ |
| IE11 |
36.36 |
32.46 |
2.14 |
1. 18 |
12.35 |
7.00 |
8.51 |
○ |
Ⓞ |
○ |
| CE8 |
37.59 |
32.25 |
2.17 |
1.16 |
12.25 |
6.43 |
8.15 |
× |
× |
○ |
1CE: Comparative Example, 2 IE: Inventive Example
* The content of the composition may be based on 14% of the solids content. |
[0105] As shown in Table 4 above, when the content of the sol-gel resin satisfied the content
proposed by the present disclosure (Inventive Examples 8 to 11), all of the properties
exhibited good or higher results.
[0106] Meanwhile, when the sol-gel resin was added in a relatively small amount (Comparative
Example 7), flat sheet corrosion resistance, processed part corrosion resistance,
and blackening resistance exhibited poor results. When the sol-gel resin was added
in a relatively larger amount (Comparative Example 8), all of the properties, except
for blackening resistance, exhibited poor results.
4. Change in Properties depending on Content of Rust-Inhibiting and Corrosion-Resistant
Agent
[0107] A surface-treatment solution composition containing trivalent chromium according
to the present disclosure includes chromium nitrate and chromium phosphate as a trivalent
chromium compound; a sol-gel resin prepared by the method mentioned in the description
of the present disclosure; a cobalt-based rust inhibitor as a rust-inhibiting and
corrosion-resistant agent; molybdenum chloride as a molybdenum-based compound; a water-soluble
cationic urethane resin (a urethane resin having a cation, which may be used in an
acidic state); N-2-(aminoethyl)-3-aminopropyl methyldimethoxysilane and 3-ureidopropyl
trimethoxysilane (1:1 mixture) as a silane coupling agent; and aluminum nitride as
an Al compound. The components were mixed in the amounts shown in Table 5 below (based
on the solids content of the composition).
[0108] A molten zinc-based plated steel sheet was cut to have a size of 7 cm × 15 cm (width
X length), and oil was removed therefrom. Then, a trivalent chromium surface-treating
solution composition, prepared in Table 5 below, was bar-coated on the steel sheet
in a dry film layer thickness of 0.4µm, and dried under conditions of PMT 60°C to
prepare specimens.
[0109] Flat sheet corrosion resistance, processed part corrosion resistance, blackening
resistance, and alkali resistance of the prepared specimens were evaluated. The evaluation
results are presented in Table 5 below. The evaluation methods for flat sheet corrosion
resistance, processed part corrosion resistance, and blackening resistance were as
described above, and the evaluation method for alkali resistance was as follows.
<Alkali resistance>
[0110] The specimens were immersed in an alkaline degreasing solution at 60°C for 2 minutes,
washed with water, air dried, and then measured with regard to a difference in color
(ΔE) before and after the operations. The alkali degreasing solution was Finecleaner
L 4460 A: 20g/2.4L + L 4460 B 12g/2.4L (pH = 12) manufactured by Parkerizing Co.,
Ltd. The evaluation criteria are as follows:
Ⓞ: ΔE ≤ 2
○: 2 < ΔE ≤ 3
Δ: 3 < ΔE ≤ 4
X: ΔE > 4
[Table 5]
| |
Composition (wt%) |
Flat Sheet Corros ion Resist ance |
Process ed Part Corrosion Resistance |
Blackening Resistance |
Alkali Resistance |
| Rust-Inhibit ing and Corrosion-re sistant agent |
Cr3+ Compound |
Sol-Gel Resin |
Molybdenum-based Compound |
Urethane Resin |
Silane Coupling Agent |
Al Compound |
| 1CE9 |
1.86 |
33.12 |
33.22 |
1.48 |
13.53 |
9.85 |
6.94 |
× |
× |
Ⓞ |
Ⓞ |
| 2IE12 |
2.03 |
33.34 |
33.49 |
1.42 |
13.42 |
10.05 |
6.25 |
○ |
Ⓞ |
Ⓞ |
Ⓞ |
| IE13 |
2.15 |
33.12 |
33.62 |
1.36 |
13.21 |
8.36 |
8.18 |
○ |
Ⓞ |
Ⓞ |
Ⓞ |
| IE14 |
2.27 |
32.25 |
35.35 |
1.28 |
12.52 |
7.24 |
9.09 |
Ⓞ |
Ⓞ |
○ |
○ |
| CE10 |
3.14 |
32.46 |
35.36 |
1.18 |
12.35 |
7.00 |
8.51 |
Ⓞ |
Ⓞ |
○ |
× |
| CE11 |
5.17 |
32.25 |
34.59 |
1.16 |
12.25 |
6.43 |
8.15 |
Ⓞ |
Ⓞ |
× |
× |
1CE: Comparative Example, 2 IE: Inventive Example
* The content of the composition may be based on 14% of the solids content. |
[0111] As shown in Table 5 above, when the content of the rust-inhibiting and corrosion-resistant
agent satisfied the content proposed by the present disclosure (Inventive Examples
12 to 14), all of the properties exhibited good or higher results.
[0112] Meanwhile, when the rust-inhibiting and corrosion-resistant agent was added in a
relatively small amount (Comparative Example 9), all the properties, except for blackening
resistance and alkali resistance, exhibited poor results. When the rust-inhibiting
and corrosion-resistant agent was added in a relatively large amount (Comparative
Examples 10 and 11), all the properties, except for corrosion resistance, exhibited
poor results.
5. Change in Properties depending on Content of Molybdenum-based Compound
[0113] A surface-treatment solution composition containing trivalent chromium according
to the present disclosure includes chromium nitrate and chromium phosphate as a trivalent
chromium compound; a sol-gel resin prepared by the method mentioned in the description
of the present disclosure; a cobalt-based rust inhibitor as a rust-inhibiting and
corrosion-resistant agent; molybdenum chloride as a molybdenum-based compound; a water-soluble
cationic urethane resin (a urethane resin having a cation, which may be used in an
acidic state); N-2-(aminoethyl)-3-aminopropyl methyldimethoxysilane and 3-ureidopropyl
trimethoxysilane (1:1 mixture) as a silane coupling agent; and aluminum nitride as
an Al compound. The components were mixed in the amounts shown in Table 6 below (based
on the solids content of the composition).
[0114] A molten zinc-based plated steel sheet was cut to have a size of 7 cm × 15 cm (width
X length), and oil was removed therefrom. Then, a trivalent chromium surface-treating
solution composition, prepared in Table 6 below, was bar-coated on the steel sheet
in a dry film layer thickness of 0.4µm, and dried under conditions of PMT 60°C to
prepare specimens.
[0115] Flat sheet corrosion resistance, processed part corrosion resistance, and blackening
resistance of the prepared specimens were evaluated. The evaluation results are presented
in Table 6 below. The evaluation methods for flat sheet corrosion resistance, processed
part corrosion resistance, and blackening resistance were as described above.
[Table 6]
| |
Composition (wt%) |
Flat Sheet Corrosion Resistance |
Processed Part Corrosion Resistance |
Black ening Resistance |
| Molybdenum-based Compound |
Cr3+ Compound |
Sol-Gel Resin |
Rust-Inhibiting and Corrosion-resistant agent |
Urethane Resin |
Silane Coupli ng Agent |
Al Compound |
| 1CE12 |
0.78 |
33.52 |
33.22 |
2.16 |
13.53 |
9.85 |
6.94 |
Ⓞ |
○ |
× |
| 2IE15 |
1.14 |
33.53 |
33.49 |
2.12 |
13.42 |
10.05 |
6.25 |
Ⓞ |
○ |
○ |
| IE16 |
1.36 |
33.12 |
33.62 |
2.15 |
13.21 |
8.36 |
8.18 |
Ⓞ |
○ |
○ |
| IE17 |
1.52 |
32.15 |
35.35 |
2.13 |
12.52 |
7.24 |
9.09 |
○ |
○ |
Ⓞ |
| CE13 |
2.18 |
32.46 |
35.36 |
2.14 |
12.35 |
7.00 |
8.51 |
× |
× |
Ⓞ |
| CE14 |
2.86 |
33.55 |
34.59 |
2.17 |
12.25 |
6.43 |
8.15 |
× |
× |
Ⓞ |
1CE: Comparative Example, 2 IE: Inventive Example
* The content of the composition may be based on 14% of the solids content. |
[0116] As shown in Table 6 above, when the content of the molybdenum-based compound satisfied
the content proposed by the present disclosure (Inventive Examples 15 to 17), all
of the properties exhibited good or higher results.
[0117] Meanwhile, when the molybdenum-based compound was added in a relatively small amount
(Comparative Example 12), blackening resistance exhibited poor results . When the
molybdenum-based compound was added in a relatively large amount (Comparative Examples
13 and 14), corrosion resistance exhibited poor results. These results confirmed that,
when the content of the molybdenum-based compound exceeded the content proposed by
the present disclosure, it precipitated from the surface of the steel sheet during
the film formation, and the molybdenum-based compound dissolved in the brine solution
caused defects in the coating layer.
6. Change in Properties depending on Content of Urethane Resin
[0118] A surface-treatment solution composition containing trivalent chromium according
to the present disclosure includes chromium nitrate and chromium phosphate as a trivalent
chromium compound; a sol-gel resin prepared by the method mentioned in the description
of the present disclosure; a cobalt-based rust inhibitor as a rust-inhibiting and
corrosion-resistant agent; molybdenum chloride as a molybdenum-based compound; a water-soluble
cationic urethane resin (a urethane resin having a cation, which may be used in an
acidic state); N-2-(aminoethyl)-3-aminopropyl methyldimethoxysilane and 3-ureidopropyl
trimethoxysilane (1:1 mixture) as a silane coupling agent; and aluminum nitride as
an Al compound. The components were mixed in the amounts shown in Table 7 below (based
on the solids content of the composition).
[0119] A molten zinc-based plated steel sheet was cut to have a size of 7 cm × 15 cm (width
X length), and oil was removed therefrom. Then, a trivalent chromium surface-treating
solution composition, prepared in Table 7 below, was bar-coated on the steel sheet
in a dry film layer thickness of 0.4µm, and dried under conditions of PMT 60°C to
prepare specimens.
[0120] Flat sheet corrosion resistance, processed part corrosion resistance, blackening
resistance, alkali resistance, piping oil infiltration, and fingerprint resistance
of the prepared specimens were evaluated. The evaluation results are presented in
Table 7 below. The evaluation methods of flat sheet corrosion resistance, processed
part corrosion resistance, blackening resistance, and alkali resistance are as described
above, and the evaluation methods of piping oil infiltration and fingerprint resistance
are as follows.
<Piping oil Infiltration>
[0121] The piping oil infiltration indicates the extent to which piping oil used in the
pipe manufacturing facility passes through dried film layer to deteriorate surface
properties of the film layer. In order to evaluate the piping oil infiltration, the
specimens were immersed in piping oil at room temperature, maintained for 24 hours,
and then the color difference (ΔE) before and after the immersion operation was measured.
The piping oil was prepared by diluting BW WELL MP-411, Buhmwoo Chemical Ind. Co.
Ltd., in 10% water. The evaluation criteria are as follows:
Ⓞ: ΔE ≤ 2
○: 2 < ΔE ≤ 3
Δ: 3 < ΔE ≤ 4
X: ΔE > 4
<Fingerprint Resistance>
[0122] Surfaces of the specimens were coated with vaseline, maintained for 10 minutes, and
the vaseline was removed therefrom. The color difference (ΔE) before and after coating
with vaseline was observed. The evaluation criteria are as follows:
Ⓞ: ΔE ≤ 2
○: 2 < ΔE ≤ 3
X: ΔE > 3
[Table 7]
| |
Composition (wt%) |
Alkal i Resis tance |
Pipin g oil Infil trati on |
Finge rprin t Resis tance |
Flat Sheet Corro sion Resis tance |
Proce ssed Part Corro sion Resis tance |
Blac keni ng Resi stan ce |
| Uretha ne Resin |
Cr3+ Compou nd |
Sol-Ge l Resin |
Rust-Inhib iting and Corrosion-resistant agent |
Molybd enum-b ased Compou nd |
Silane Coupli ng Agent |
Al Compou nd |
| 1CE15 |
11.83 |
33.52 |
34.22 |
2.16 |
1.48 |
9.85 |
6.94 |
× |
× |
× |
○ |
× |
○ |
| 2IE18 |
12.18 |
33.53 |
34.45 |
2.12 |
1.42 |
10.05 |
6.25 |
○ |
○ |
○ |
Ⓞ |
Ⓞ |
○ |
| IE19 |
12.85 |
33.12 |
33.98 |
2.15 |
1.36 |
8.36 |
8.18 |
○ |
Ⓞ |
○ |
Ⓞ |
Ⓞ |
Ⓞ |
| IE20 |
13.21 |
32.15 |
33.90 |
2.13 |
1.28 |
7.24 |
10.09 |
Ⓞ |
Ⓞ |
Ⓞ |
○ |
Ⓞ |
Ⓞ |
| IE21 |
13.64 |
32.46 |
34.07 |
2.14 |
1. 18 |
7.00 |
9.51 |
Ⓞ |
Ⓞ |
Ⓞ |
○ |
Ⓞ |
○ |
| CE16 |
14.25 |
33.55 |
33.29 |
2.17 |
1.16 |
6.43 |
9.15 |
Ⓞ |
Ⓞ |
Ⓞ |
× |
× |
× |
1CE: Comparative Example, 2 IE: Inventive Example
* The content of the composition may be based on 14% of the solids content. |
[0123] As shown in Table 7 above, when the content of the urethane resin satisfied the content
proposed by the present disclosure (Inventive Examples 18 to 21), all of the properties
exhibited good or higher results.
[0124] Meanwhile, when the urethane resin was added in a relatively small amount (Comparative
Example 13), all of the properties, except for flat sheet corrosion resistance and
blackening resistance, exhibited poor results. When the urethane resin was added in
a relatively large amount (Comparative Example 16), processed part corrosion resistance,
flat sheet corrosion resistance, and blackening resistance exhibited poor results.
7. Change in Properties depending on Content and Type of Silane Coupling Agent
[0125] A surface-treatment solution composition containing trivalent chromium according
to the present disclosure includes chromium nitrate and chromium phosphate as a trivalent
chromium compound; a sol-gel resin prepared by the method mentioned in the description
of the present disclosure; a cobalt-based rust inhibitor as a rust-inhibiting and
corrosion-resistant agent; molybdenum chloride as a molybdenum-based compound; a water-soluble
cationic urethane resin (a urethane resin having a cation, which may be used in an
acidic state); N-2-(aminoethyl)-3-aminopropyl methyldimethoxysilane and 3-ureidopropyl
trimethoxysilane (1:1 mixture) as a silane coupling agent; and aluminum nitride as
an Al compound. The components were mixed in the amounts shown in Table 8 below (based
on the solids content of the composition).
[0126] A molten zinc-based plated steel sheet was cut to have a size of 7 cm × 15 cm (width
X length), and oil was removed therefrom. Then, a trivalent chromium surface-treating
solution composition, prepared in Table 8 below, was bar-coated on the steel sheet
in a dry film layer thickness of 0.4µm, and dried under conditions of PMT 60°C to
prepare specimens.
[0127] Flat sheet corrosion resistance, processed part corrosion resistance, blackening
resistance, alkali resistance, piping oil infiltration, and fingerprint resistance
of the prepared specimens were evaluated. The evaluation results are presented in
Table 8 below. The evaluation methods of flat sheet corrosion resistance, processed
part corrosion resistance, blackening resistance, and alkali resistance are as described
above.
[Table 8]
| |
Composition (wt%) |
Alkal i Resis tance |
Pipin g oil Infil trati on |
Finge rprin t Resis tance |
Flat Sheet Corro sion Resis tance |
Proce ssed Part Corro sion Resis tance |
Blac keni ng Resi stan ce |
| Silane Coupling Agent |
Cr3- Compou nd |
Sol-Ge l Resin |
Rust-Inhi biting and Corrosion -resistan t agent |
Molybd enum-b ased Compou nd |
Urethane Resin |
Al Compo und |
| 1CE17 |
2.85 |
34.52 |
35.52 |
2.16 |
1.48 |
13.53 |
9.94 |
× |
× |
○ |
○ |
Ⓞ |
○ |
| 2IE22 |
5.68 |
33.53 |
34.58 |
2.12 |
1.42 |
13.42 |
9.25 |
○ |
○ |
○ |
Ⓞ |
Ⓞ |
○ |
| IE23 |
7.36 |
33.12 |
34.62 |
2.15 |
1.36 |
13.21 |
8.18 |
○ |
Ⓞ |
○ |
Ⓞ |
Ⓞ |
Ⓞ |
| IE24 |
8.84 |
32.15 |
33.90 |
2.13 |
1.28 |
12.52 |
9.18 |
Ⓞ |
Ⓞ |
Ⓞ |
Ⓞ |
Ⓞ |
Ⓞ |
| IE25 |
10.15 |
32.46 |
34.07 |
2.14 |
1. 18 |
12.35 |
7.65 |
Ⓞ |
○ |
Ⓞ |
Ⓞ |
Ⓞ |
○ |
| CE18 |
14.53 |
31.55 |
32.59 |
2.17 |
1.16 |
12.25 |
5.75 |
○ |
○ |
○ |
Ⓞ |
× |
× |
1CE: Comparative Example, 2 IE: Inventive Example
* The content of the composition may be based on 14% of the solids content. |
[0128] As shown in Table 8 above, when the content of the silane coupling agent satisfied
the content proposed by the present disclosure (Inventive Examples 22 to 25), all
of the properties exhibited good or higher results.
[0129] Meanwhile, when the silane coupling agent was added in a relatively small amount
(Comparative Example 17), alkali resistance and oil resistance exhibited poor results.
When the silane coupling agent was added in a relatively large amount (Comparative
Example 18), the film may become too dry to form a hard film. Therefore, processed
part corrosion resistance was reduced, and blackening resistance exhibited poor results.
[0130] The surface-treatment solution composition containing trivalent chromium according
to Inventive Example 23 was used, but a silane coupling agent was used as the silane
coupling agent shown in Table 9 below. As described above, specimens were prepared
with the compositions using the silane coupling agents described in Table 9 below,
and flat sheet corrosion resistance was evaluated. The results are shown in Table
9 below.
[Table 9]
| 1IE No. |
Content |
Flat Sheet Corrosion Resistance |
| A |
B |
C |
D |
E |
F |
G |
H |
I |
J |
K |
| 26 |
7.36 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
○ |
| 27 |
0 |
7.36 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
Ⓞ |
| 28 |
0 |
0 |
7.36 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
○ |
| 29 |
0 |
0 |
0 |
7.36 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
⊚ |
| 30 |
0 |
0 |
0 |
0 |
7.36 |
0 |
0 |
0 |
0 |
0 |
0 |
○ |
| 31 |
0 |
0 |
0 |
0 |
0 |
7.36 |
0 |
0 |
0 |
0 |
0 |
⊚ |
| 32 |
0 |
0 |
0 |
0 |
0 |
0 |
7.36 |
0 |
0 |
0 |
0 |
○ |
| 33 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
7.36 |
0 |
0 |
0 |
○ |
| 34 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
7.36 |
0 |
0 |
○ |
| 35 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
7.36 |
0 |
⊚ |
| 36 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
7.36 |
○ |
| 37 |
3.68 |
3.68 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
○ |
| 38 |
3.68 |
0 |
0 |
3.68 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
○ |
| 39 |
0 |
3.68 |
0 |
0 |
0 |
3.68 |
0 |
0 |
0 |
0 |
0 |
⊚ |
| 40 |
0 |
0 |
0 |
3.68 |
0 |
3.68 |
0 |
0 |
0 |
0 |
0 |
○ |
| 41 |
0 |
0 |
0 |
0 |
3.68 |
0 |
3.68 |
0 |
0 |
0 |
0 |
○ |
| 42 |
0 |
0 |
0 |
0 |
0 |
3.68 |
0 |
0 |
0 |
3.68 |
0 |
⊚ |
| 43 |
0 |
0 |
3.68 |
0 |
0 |
3.68 |
0 |
0 |
0 |
0 |
0 |
○ |
| 44 |
0 |
0 |
0 |
0 |
0 |
0 |
3.68 |
0 |
0 |
3.68 |
0 |
○ |
| 45 |
3.68 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
3.68 |
0 |
○ |
| 46 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
3.68 |
3.68 |
○ |
| 47 |
0 |
0 |
0 |
3.68 |
0 |
0 |
0 |
0 |
3.68 |
0 |
0 |
○ |
| 48 |
0 |
0 |
0 |
0 |
3.68 |
0 |
0 |
3.68 |
0 |
0 |
0 |
○ |
| 49 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
3.68 |
0 |
0 |
3.68 |
○ |
| 50 |
0 |
3.68 |
3.68 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
⊚ |
| 51 |
0 |
0 |
3.68 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
3.68 |
○ |
| 52 |
0 |
0 |
0 |
0 |
0 |
0 |
3.68 |
0 |
3.68 |
0 |
0 |
○ |
| 53 |
0 |
0 |
0 |
0 |
3.68 |
0 |
0 |
0 |
3.68 |
0 |
0 |
○ |
| 54 |
0 |
3.68 |
0 |
3.68 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
⊚ |
| 55 |
0 |
3.68 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
3.68 |
○ |
| 56 |
3.68 |
0 |
3.68 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
○ |
| 57 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
0 |
3.68 |
3.68 |
0 |
○ |
| 58 |
0 |
3.68 |
0 |
0 |
3.68 |
0 |
0 |
0 |
0 |
0 |
0 |
○ |
| 59 |
0 |
0 |
0 |
0 |
0 |
0 |
3.68 |
3.68 |
0 |
0 |
0 |
○ |
| A: 2-(3,4-epoxycyclohexyl)-ethyl trimethoxysilane |
| B: 3-glycidoxypropyl trimethoxysilane |
| C: 3-glycidoxypropyl methyldiethoxysilane |
| D: 3-glycidoxypropyl triethoxysilane |
| E: N-2-(aminoethyl)-3-aminopropyl methyldimethoxysilane |
| F: N-2-(aminoethyl)-3-aminopropyl trimethoxysilane |
| G: N-2-(aminoethyl)-3-aminopropyl triethoxysilane |
| H: 3-aminopropyl trimethoxysilane |
| I: 3-aminopropyl triethoxysilane |
| J: 3-ureidopropyl trimethoxysilane |
| K: 3-ureidopropyl trialkoxysilane |
1 IE: Inventive Example
* The content of the composition may be based on 14% of the solids content. |
[0131] As shown in Table 8 above, Inventive Examples 26 to 59 exhibited good or excellent
flat sheet corrosion resistance. In particular, in the case of the test specimen treated
with the solution composition for steel sheet surface treatment containing trivalent
chromium prepared according to the composition of Inventive Example 42, an area of
white rust generated after 144 hours or more was 0%, which exhibited the most excellent.
8. Change in Properties according to Content of Al Compound
[0132] A surface-treatment solution composition containing trivalent chromium according
to the present disclosure includes chromium nitrate and chromium phosphate as a trivalent
chromium compound; a sol-gel resin prepared by the method mentioned in the description
of the present disclosure; a cobalt-based rust inhibitor as a rust-inhibiting and
corrosion-resistant agent; molybdenum chloride as a molybdenum-based compound; a water-soluble
cationic urethane resin (a urethane resin having a cation, which may be used in an
acidic state); N-2-(aminoethyl)-3-aminopropyl methyldimethoxysilane and 3-ureidopropyl
trimethoxysilane (1:1 mixture) as a silane coupling agent; and aluminum nitride as
an Al compound. The components were mixed in the amounts shown in Table 10 below (based
on the solids content of the composition).
[0133] A molten zinc-based plated steel sheet was cut to have a size of 7 cm × 15 cm (width
X length), and oil was removed therefrom. Then, a trivalent chromium surface-treating
solution composition, prepared in Table 10 below, was bar-coated on the steel sheet
in a dry film layer thickness of 0.4µm, and dried under conditions of PMT 60°C to
prepare specimens.
[0134] Flat sheet corrosion resistance, processed part corrosion resistance, blackening
resistance, alkali resistance, piping oil infiltration, and fingerprint resistance
of the prepared specimens were evaluated. The evaluation results are presented in
Table 10 below. The evaluation methods of flat sheet corrosion resistance, processed
part corrosion resistance, blackening resistance, and alkali resistance are as described
above.
[Table 10]
| |
Composition (wt%) |
Flat Sheet Corrosion Resistance |
Processed Part Corrosion Resistance |
Black ening Resis tance |
| Al Compou nd |
Cr3+ Compou nd |
Sol-Gel Resin |
Rust-Inhibit ing and Corrosion-re sistant agent |
Molybden um-based Compound |
Uretha ne Resin |
Silane Coupling Agent |
| 1CE19 |
2.85 |
34.52 |
35.52 |
2.16 |
1.48 |
13.53 |
9.94 |
⊚ |
○ |
× |
| 2IE60 |
5.68 |
33.53 |
34.58 |
2.12 |
1.42 |
13.42 |
9.25 |
⊚ |
○ |
○ |
| IE61 |
7.36 |
33.12 |
34.62 |
2.15 |
1.36 |
13.21 |
8.18 |
⊚ |
○ |
○ |
| IE62 |
8.84 |
32.15 |
33.90 |
2.13 |
1.28 |
12.52 |
9.18 |
○ |
○ |
⊚ |
| IE63 |
10.15 |
32.46 |
34.07 |
2.14 |
1.18 |
12.35 |
7.65 |
○ |
○ |
⊚ |
| CE20 |
14.53 |
31.55 |
32.59 |
2.17 |
1.16 |
12.25 |
5.75 |
× |
× |
⊚ |
1 CE: Comparative Example, 2 IE: Inventive Example
* The content of the composition may be based on 14% of the solids content. |
[0135] As shown in Table 10 above, when the content of the Al compound satisfied the content
proposed by the present disclosure (Inventive Examples 60 to 63), all of the properties
exhibited good or higher results.
[0136] Meanwhile, when the Al compound was added in a relatively small amount (Comparative
Example 19), blackening resistance exhibited poor results. When the Al compound was
added in a relatively large amount (Comparative Example 20), corrosion resistance
exhibited poor results.
[0137] These results confirmed that, when the content of the Al compound exceeded the content
proposed by the present disclosure, it precipitated from the surface of the steel
sheet during the film formation, and the Al compound dissolved in water caused defects
in the coating layer.
9. Change in Properties according to Thickness of Film Layer and Drying Temperature
[0138] A molten zinc-based plated steel sheet was cut to have a size of 7 cm x 15 cm (width
X length), and oil was removed therefrom. Then, the composition of Inventive Example
42 was bar-coated, and dried with a hot-air drying furnace to prepare specimens. Thicknesses
of the coated film layers and PMT temperatures were controlled to the thicknesses
shown in Table 11 below.
[0139] Alkali resistance, piping oil infiltration, fingerprint resistance, flat sheet corrosion
resistance, processed part corrosion resistance, and blackening resistance of the
prepared specimens were evaluated. The evaluation results are presented in Table 11
below.
[Table 11]
| |
Thickness Of Film Layer (µm) |
Dry Temp. (°C) |
Alkali Resistance |
Piping oil Infiltra tion |
Fingerprint Resistance |
Flat Sheet Corrosion Resistanc e |
Processed Part Corrosion Resistanc e |
Blackening Resistance |
| *IE64 |
0.1 |
50 |
Δ |
Δ |
○ |
Δ |
Δ |
Δ |
| IE65 |
0.3 |
50 |
⊚ |
⊚ |
⊚ |
⊚ |
⊚ |
⊚ |
| IE66 |
0.4 |
50 |
⊚ |
⊚ |
⊚ |
⊚ |
⊚ |
⊚ |
| IE67 |
0.5 |
50 |
⊚ |
⊚ |
⊚ |
⊚ |
⊚ |
○ |
| IE68 |
0.8 |
50 |
⊚ |
⊚ |
⊚ |
⊚ |
⊚ |
○ |
| IE69 |
0.4 |
40 |
Δ |
Δ |
⊚ |
○ |
○ |
○ |
| IE70 |
0.4 |
60 |
⊚ |
⊚ |
⊚ |
⊚ |
⊚ |
⊚ |
| IE71 |
0.4 |
70 |
⊚ |
⊚ |
⊚ |
⊚ |
⊚ |
Δ |
[0140] As shown in Table 11 above, when the film layer was formed at 0.3µm to 0.5µm (Inventive
Examples 65 to 67, and 70), all of the properties exhibited good or higher results.
[0141] Meanwhile, when the formed film was relatively thin (Inventive Example 64), all of
the properties, except for fingerprint resistance, exhibited moderate results (Δ).
Meanwhile, when the film was formed relatively thick (Inventive Example 68), all of
the properties exhibited good or higher results. In this regard, a thicker film than
those of Example 67 is not required in view of economy, since the film has no improved
properties as compared with Inventive Example 67.
[0142] Further, as shown in Table 11 above, when the film layer was formed at a drying temperature
of the film of 50°C to 60°C (Inventive Examples 65 to 68, and 70), all of the properties
exhibited good or higher results.
[0143] When the drying temperature was relatively low (Inventive Example 69), sufficient
drying was not carried out, and alkali resistance and piping oil infiltration exhibited
moderate results (Δ). Meanwhile, when the drying temperature was relatively high (Inventive
Example 71), the steel sheet was not sufficiently cooled during the cooling process
(air cooling) in air, and, consequently, blackening resistance exhibited moderate
results (Δ) due to the condensation phenomenon by a packaging operation.
[0144] While example embodiments have been shown and described above, it will be apparent
to those skilled in the art that modifications and variations could be made without
departing from the scope of the present disclosure as defined by the appended claims.
1. Oberflächenbehandlungslösungszusammensetzung für ein verzinktes, beschichtetes Stahlblech,
umfassend:
10 Gew.-% bis 20 Gew.-% einer dreiwertigen Chromverbindung, die Chromphosphat (A)
und Chromnitrat (B) enthält;
20 Gew.-% bis 40 Gew.-% eines Sol-Gel-Harzes auf Silanbasis, in dem drei Arten von
Silanverbindungen vernetzt sind;
0,2 Gew.-% bis 0,4 Gew.-% eines Rostschutz- und korrosionsbeständigen Mittels;
0,1 Gew.-% bis 0,3 Gew.-% einer Verbindung auf Molybdänbasis;
5 Gew.-% bis 10 Gew.-% eines wasserlöslichen kationischen Urethanharzes;
0,5 Gew.-% bis 2,0 Gew.-% eines Silankopplungsmittels;
0,5 Gew.-% bis 2,0 Gew.-% einer AI-Verbindung; und
25,3 Gew.-% bis 63,7 Gew.-% Wasser,
wobei das Rostschutz- und korrosionsbeständige Mittel einem oder mehreren, ausgewählt
aus der Gruppe, entsprechen, die aus einem Rostschutz auf Fluorbasis (ausgenommen
Molybdänfluorid), einem Rostschutz auf Vanadiumbasis (ausgenommen eine Fluorverbindung),
einem Rostschutz auf Grundlage eines Cersalzes (ausgenommen eine Fluorverbindung)
und einem Rostschutz auf Cobaltbasis (ausgenommen eine Fluorverbindung) besteht,
wobei die Verbindung auf Molybdänbasis einem oder mehreren, ausgewählt aus der Gruppe,
entspricht, die aus Molybdänoxid, Molybdänsulfid, Molybdänacetat, Molybdänphosphat,
Molybdäncarbid, Molybdänchlorid, Molybdänfluorid und Molybdännitrid besteht,
wobei die drei Arten von Silanverbindungen Folgendes umfassen:
eine Art eines ersten Silans, das aus der Gruppe ausgewählt ist, die aus Tetraethylorthosilikat,
Tetramethoxysilan, Methyltrimethoxysilan, Methyltriethoxysilan, Dimethyldimethoxysilan
und Dimethyldiethoxysilan besteht;
eine Art eines zweiten Silans, das aus der Gruppe ausgewählt ist, die aus 3-Glycidoxypropyltrimethoxysilan,
2-(3,4-Epoxycyclohexyl)-ethyltrimethoxysilan, 3-Glycidoxypropyltrimethoxysilan und
3-Glycidoxypropylmethyldiethoxysilan besteht; und
eine Art eines dritten Silans, das aus der Gruppe ausgewählt ist, die aus 3-Aminopropyltriethoxysilan,
N-2-(Aminoethyl)-3-aminopropylmethyldimethoxysilan, N-2-(Aminoethyl)-3-aminopropyltrimethoxysilan
und N-2-(Aminoethyl)-3-aminopropyltriethoxysilan besteht und
wobei die AI-Verbindung einem oder mehreren, ausgewählt aus der Gruppe, entspricht,
die aus Aluminiumhydroxid, Aluminiumchlorid, Aluminiumnitrid, Aluminiumsulfat, Aluminiumisopropoxid
und Aluminiumphosphat besteht.
2. Oberflächenbehandlungslösungszusammensetzung nach Anspruch 1, wobei das Chromphosphat
(A) und das Chromnitrat (B) einem Gehaltsverhältnis A/(A+B) von 0,3 bis 0,6 entsprechen.
3. Oberflächenbehandlungslösungszusammensetzung nach Anspruch 1, wobei das Silankopplungsmittel
einem oder mehreren, ausgewählt aus der Gruppe, entspricht, die aus Folgendem besteht:
2-(3,4-Epoxycyclohexyl)-ethyltrimethoxysilan, 3-Glycidoxypropyltrimethoxysilan, 3-Glycidoxypropylmethyldiethoxysilan,
3-Glycidoxypropyltriethoxysilan, N-2-(Aminoethyl)-3-aminopropylmethyldimethoxysilan,
N-2-(Aminoethyl)-3-aminopropyltrimethoxysilan, N-2-(Aminoethyl)-3-aminopropyltriethoxysilan,
3-Aminopropyltrimethoxysilan, 3-Aminopropyltriethoxysilan, 3-Ureidopropyltrimethoxysilan
und 3-Ureidopropyltrialkoxysilan.
4. Oberflächenbehandeltes verzinktes, beschichtetes Stahlblech, umfassend:
ein Stahlblech;
eine verzinkte, beschichtete Schicht, die auf mindestens einer Fläche des Stahlblechs
gebildet wird; und
eine dreiwertige Chromatfilmschicht, die eine Dicke von 0,1 µm oder mehr aufweist
und auf der verzinkten, beschichteten Schicht gebildet wird,
wobei die dreiwertige Chromatfilmschicht Folgendes umfasst:
31,47 Gew.-% bis 35,23 Gew.-% einer dreiwertigen Chromverbindung, die Chromphosphat
(A) und Chromnitrat (B) enthält;
32,49 Gew.-% bis 36,36 Gew.-% eines Sol-Gel-Harzes auf Silanbasis, in dem drei Arten
von Silanverbindungen vernetzt sind;
2,03 Gew.-% bis 2,27 Gew.-% eines Rostschutz- und korrosionsbeständigen Mittels;
1,14 Gew.-% bis 1,52 Gew.-% einer Verbindung auf Molybdänbasis;
12,18 Gew.-% bis 13,64 Gew.-% eines Urethanharzes;
5,68 Gew.-% bis 10,15 Gew.-% eines Silankopplungsmittels; und
5,68 Gew.-% bis 10,15 Gew.-% einer AI-Verbindung,
wobei das Rostschutz- und korrosionsbeständige Mittel einem oder mehreren, ausgewählt
aus der Gruppe, entsprechen, die aus einem Rostschutz auf Fluorbasis (ausgenommen
Molybdänfluorid), einem Rostschutz auf Vanadiumbasis (ausgenommen eine Fluorverbindung),
einem Rostschutz auf Grundlage eines Cersalzes (ausgenommen eine Fluorverbindung)
und einem Rostschutz auf Cobaltbasis (ausgenommen eine Fluorverbindung) besteht,
wobei die Verbindung auf Molybdänbasis einem oder mehreren, ausgewählt aus der Gruppe,
entspricht, die aus Molybdänoxid, Molybdänsulfid, Molybdänacetat, Molybdänphosphat,
Molybdäncarbid, Molybdänchlorid, Molybdänfluorid und Molybdännitrid besteht,
wobei die drei Arten von Silanverbindungen Folgendes umfassen:
eine Art eines ersten Silans, das aus der Gruppe ausgewählt ist, die aus Tetraethylorthosilikat,
Tetramethoxysilan, Methyltrimethoxysilan, Methyltriethoxysilan, Dimethyldimethoxysilan
und Dimethyldiethoxysilan besteht;
eine Art eines zweiten Silans, das aus der Gruppe ausgewählt ist, die aus 3-Glycidoxypropyltrimethoxysilan,
2-(3,4-Epoxycyclohexyl)-ethyltrimethoxysilan, 3-Glycidoxypropyltrimethoxysilan und
3-Glycidoxypropylmethyldiethoxysilan besteht; und
eine Art eines dritten Silans, das aus der Gruppe ausgewählt ist, die aus 3-Aminopropyltriethoxysilan,
N-2-(Aminoethyl)-3-aminopropylmethyldimethoxysilan, N-2-(Aminoethyl)-3-aminopropyltrimethoxysilan
und N-2-(Aminoethyl)-3-aminopropyltriethoxysilan besteht und
wobei die AI-Verbindung einem oder mehreren, ausgewählt aus der Gruppe, entspricht,
die aus Aluminiumhydroxid, Aluminiumchlorid, Aluminiumnitrid, Aluminiumsulfat, Aluminiumisopropoxid
und Aluminiumphosphat besteht.
5. Oberflächenbehandeltes verzinktes, beschichtetes Stahlblech nach Anspruch 4, wobei
das Chromphosphat (A) und das Chromnitrat (B) einem Gehaltsverhältnis A/(A+B) von
0,89 bis 0,95 entsprechen.
6. Oberflächenbehandeltes verzinktes, beschichtetes Stahlblech nach Anspruch 4,
wobei das Silankopplungsmittel einem oder mehreren, ausgewählt aus der Gruppe, entspricht,
die aus Folgendem besteht: 2-(3,4-Epoxycyclohexyl)-ethyltrimethoxysilan, 3-Glycidoxypropyltrimethoxysilan,
3-Glycidoxypropylmethyldiethoxysilan, 3-Glycidoxypropyltriethoxysilan, N-2-(Aminoethyl)-3-aminopropylmethyldimethoxysilan,
N-2-(Aminoethyl)-3-aminopropyltrimethoxysilan, N-2-(Aminoethyl)-3-aminopropyltriethoxysilan,
3-Aminopropyltrimethoxysilan, 3-Aminopropyltriethoxysilan, 3-Ureidopropyltrimethoxysilan
und 3-Ureidopropyltrialkoxysilan.
7. Oberflächenbehandeltes verzinktes, beschichtetes Stahlblech nach Anspruch 4, wobei
die dreiwertige Chromatfilmschicht eine Dicke von 0,3 µm bis 0,5 µm aufweist.
8. Verfahren zur Herstellung eines oberflächenbehandelten verzinkten, beschichteten Stahlblechs,
umfassend:
Aufbringen einer Oberflächenbehandlungslösungszusammensetzung nach einem der Ansprüche
1 bis 3 auf ein verzinktes, beschichtetes Stahlblech, auf dem eine verzinkte, beschichtete
Schicht gebildet wird; und
Trocknen der aufgebrachten
Oberflächenbehandlungslösungszusammensetzung, um eine dreiwertige Chromatfilmschicht
zu bilden.
1. Composition de solution de traitement de surface pour une tôle d'acier à placage à
base de zinc, comprenant :
10 % en poids à 20 % en poids d'un composé de chrome trivalent contenant du phosphate
de chrome (A) et du nitrate de chrome (B) ;
20 % en poids à 40 % en poids d'une résine sol-gel à base de silane dans laquelle
trois types de composés de silane sont réticulés ;
0,2 % en poids à 0,4 % en poids d'un agent inhibant la rouille et résistant à la corrosion
;
0,1 % en poids à 0,3 % en poids d'un composé à base de molybdène ;
5 % en poids à 10 % en poids d'une résine d'uréthane cationique soluble dans l'eau
;
0,5 % en poids à 2,0 % en poids d'un agent de couplage de silane ;
0,5 % en poids à 2,0 % en poids d'un composé d'Al ; et
25,3 % en poids à 63,7 % en poids d'eau,
dans laquelle l'agent inhibant la rouille et résistant à la corrosion est un ou plusieurs
éléments choisis dans le groupe consistant en un inhibiteur de rouille à base de fluor
(à l'exclusion du fluorure de molybdène), un inhibiteur de rouille à base de vanadium
(à l'exclusion d'un composé fluoré), un inhibiteur de rouille à base de sel de cérium
(à l'exclusion d'un composé fluoré), et un inhibiteur de rouille à base de cobalt
(à l'exclusion d'un composé fluoré),
dans laquelle le composé à base de molybdène est un ou plusieurs éléments choisis
dans le groupe consistant en oxyde de molybdène, sulfure de molybdène, acétate de
molybdène, phosphate de molybdène, carbure de molybdène, chlorure de molybdène, fluorure
de molybdène, et nitrure de molybdène,
dans laquelle les trois types de composés de silane comprennent :
un type de premier silane choisi dans le groupe consistant en orthosilicate de tétraéthyle,
tétraméthoxysilane, méthyltriméthoxysilane, méthyltriéthoxysilane, diméthyldiméthoxysilane,
et diméthyldiéthoxysilane ;
un type de deuxième silane choisi dans le groupe consistant en 3-glycidoxypropyl triméthoxysilane,
2-(3,4-époxycyclohexyl)-éthyl triméthoxysilane, 3-glycidoxypropyl triméthoxysilane,
et 3-glycidoxypropyl méthyldiéthoxysilane ; et
un type de troisième silane choisi dans le groupe consistant en 3-aminopropyl triéthoxysilane,
N-2-(aminoéthyl)-3-aminopropyl méthyldiméthoxysilane, N-2-(aminoéthyl)-3-aminopropyl
triméthoxysilane, et N-2-(aminoéthyl)-3-aminopropyl triéthoxysilane, et
dans laquelle le composé d'Al est un ou plusieurs éléments choisis dans le groupe
consistant en hydroxyde d'aluminium, chlorure d'aluminium, nitrure d'aluminium, sulfate
d'aluminium, isopropoxyde d'aluminium, et phosphate d'aluminium.
2. Composition de solution de traitement de surface selon la revendication 1, dans laquelle
le phosphate de chrome (A) et le nitrate de chrome (B) satisfont un rapport de teneur
A/(A+B) de 0,3 à 0,6.
3. Composition de solution de traitement de surface selon la revendication 1, dans laquelle
l'agent de couplage de silane est un ou plusieurs éléments choisis dans le groupe
consistant en 2-(3,4-époxycyclohexyl)-éthyl triméthoxysilane, 3-glycidoxypropyl triméthoxysilane,
3-glycidoxypropyl méthyldiéthoxysilane, 3-glycidoxypropyl triéthoxysilane, N-2-(aminoéthyl)-3-aminopropyl
méthyldiméthoxysilane, N-2-(aminoéthyl)-3-aminopropyl triméthoxysilane, N-2-(aminoéthyl)-3-aminopropyl
triéthoxysilane, 3-aminopropyl triméthoxysilane, 3-aminopropyl triéthoxysilane, 3-uréidopropyl
triméthoxysilane, et 3-uréidopropyl trialcoxysilane.
4. Tôle d'acier à placage à base de zinc traitée en surface comprenant :
une tôle d'acier ;
une couche à placage à base de zinc formée sur au moins une surface de la tôle d'acier
; et
une couche de film de chromate trivalent ayant une épaisseur de 0,1 µm ou plus formée
sur la couche à placage à base de zinc,
dans laquelle la couche de film de chromate trivalent comprend :
31,47 % en poids à 35,23 % en poids d'un composé de chrome trivalent contenant du
phosphate de chrome (A) et du nitrate de chrome (B) ;
32,49 % en poids à 36,36 % en poids d'une résine sol-gel à base de silane dans laquelle
trois types de composés de silane sont réticulés ;
2,03 % en poids à 2,27 % en poids d'un agent inhibant la rouille et résistant à la
corrosion ;
1,14 % en poids à 1,52 % en poids d'un composé à base de molybdène ;
12,18 % en poids à 13,64 % en poids d'une résine d'uréthane ;
5,68 % en poids à 10,15 % en poids d'un agent de couplage de silane ; et
5,68 % en poids à 10,15 % en poids d'un composé d'Al,
dans laquelle l'agent inhibant la rouille et résistant à la corrosion est un ou plusieurs
éléments choisis dans le groupe consistant en un inhibiteur de rouille à base de fluor
(à l'exclusion du fluorure de molybdène), un inhibiteur de rouille à base de vanadium
(à l'exclusion d'un composé fluoré), un inhibiteur de rouille à base de sel de cérium
(à l'exclusion d'un composé fluoré), et un inhibiteur de rouille à base de cobalt
(à l'exclusion d'un composé fluoré),
dans laquelle le composé à base de molybdène est un ou plusieurs éléments choisis
dans le groupe consistant en oxyde de molybdène, sulfure de molybdène, acétate de
molybdène, phosphate de molybdène, carbure de molybdène, chlorure de molybdène, fluorure
de molybdène, et nitrure de molybdène,
dans laquelle les trois types de composés de silane comprennent :
un type de premier silane choisi dans le groupe consistant en orthosilicate de tétraéthyle,
tétraméthoxysilane, méthyltriméthoxysilane, méthyltriéthoxysilane, diméthyldiméthoxysilane,
et diméthyldiéthoxysilane ;
un type de deuxième silane choisi dans le groupe consistant en 3-glycidoxypropyl triméthoxysilane,
2-(3,4-époxycyclohexyl)-éthyl triméthoxysilane, 3-glycidoxypropyl triméthoxysilane,
et 3-glycidoxypropyl méthyldiéthoxysilane ; et
un type de troisième silane choisi dans le groupe consistant en 3-aminopropyl triéthoxysilane,
N-2-(aminoéthyl)-3-aminopropyl méthyldiméthoxysilane, N-2-(aminoéthyl)-3-aminopropyl
triméthoxysilane, et N-2-(aminoéthyl)-3-aminopropyl triéthoxysilane, et
dans laquelle le composé d'Al est un ou plusieurs éléments choisis dans le groupe
consistant en hydroxyde d'aluminium, chlorure d'aluminium, nitrure d'aluminium, sulfate
d'aluminium, isopropoxyde d'aluminium, et phosphate d'aluminium.
5. Tôle d'acier à placage à base de zinc traitée en surface selon la revendication 4,
dans laquelle le phosphate de chrome (A) et le nitrate de chrome (B) satisfont un
rapport de teneur A/(A+B) de 0,89 à 0,95.
6. Tôle d'acier à placage à base de zinc traitée en surface selon la revendication 4,
dans laquelle l'agent de couplage de silane est un ou plusieurs éléments choisis dans
le groupe consistant en 2-(3,4-époxycyclohexyl)-éthyl triméthoxysilane, 3-glycidoxypropyl
triméthoxysilane, 3-glycidoxypropyl méthyldiéthoxysilane, 3-glycidoxypropyl triéthoxysilane,
N-2-(aminoéthyl)-3-aminopropyl méthyldiméthoxysilane, N-2-(aminoéthyl)-3-aminopropyl
triméthoxysilane, N-2-(aminoéthyl)-3-aminopropyl triéthoxysilane, 3-aminopropyl triméthoxysilane,
3-aminopropyl triéthoxysilane, 3-uréidopropyl triméthoxysilane, et 3-uréidopropyl
trialcoxysilane.
7. Tôle d'acier à placage à base de zinc traitée en surface selon la revendication 4,
dans laquelle la couche de film de chromate trivalent a une épaisseur de 0,3 µm à
0,5 µm.
8. Procédé de production d'une tôle d'acier à placage à base de zinc traitée en surface,
comprenant :
le revêtement d'une tôle d'acier à placage à base de zinc sur laquelle une couche
à placage à base de zinc est formée avec une composition de solution de traitement
de surface de l'une quelconque des revendications 1 à 3 ; et,
le séchage de la composition de solution de traitement de surface revêtue pour former
une couche de film de chromate trivalent.